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EP 2 315 656 B1 |
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EUROPEAN PATENT SPECIFICATION |
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Mention of the grant of the patent: |
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08.01.2014 Bulletin 2014/02 |
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Date of filing: 26.08.2009 |
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International Patent Classification (IPC):
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International application number: |
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PCT/GB2009/051070 |
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International publication number: |
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WO 2010/023476 (04.03.2010 Gazette 2010/09) |
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COMPOSITE TUBULAR PRODUCT AND METHOD OF MAKING
ROHRFÖRMIGES VERBUNDPRODUKT UND VERFAHREN ZUR HERSTELLUNG
PRODUIT TUBULAIRE COMPOSITE ET PROCÉDÉ POUR LA FABRICATION
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Designated Contracting States: |
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AT BE BG CH CY CZ DE DK EE ES FI FR GB GR HR HU IE IS IT LI LT LU LV MC MK MT NL NO
PL PT RO SE SI SK SM TR |
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Priority: |
27.08.2008 GB 0815572
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Date of publication of application: |
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04.05.2011 Bulletin 2011/18 |
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Proprietor: Lochnagar Consulting AG |
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6047 Kastanienbaum (CH) |
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Inventor: |
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- CAMERON, Duncan
Blairdaff,
Inverurie Aberdeenshire AB51 5LS (GB)
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Representative: Ede, Eric |
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Murgitroyd & Company
Scotland House
165-169 Scotland Street Glasgow G5 8PL Glasgow G5 8PL (GB) |
| (56) |
References cited: :
JP-A- 60 078 727 US-A1- 2002 119 271
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US-A- 5 330 790 US-B1- 6 666 267
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| Note: Within nine months from the publication of the mention of the grant of the European
patent, any person may give notice to the European Patent Office of opposition to
the European patent
granted. Notice of opposition shall be filed in a written reasoned statement. It shall
not be deemed to
have been filed until the opposition fee has been paid. (Art. 99(1) European Patent
Convention).
|
Field of the Invention
[0001] This invention relates to tubular elements such as sections of drill pipe, work strings,
sub assemblies, risers, rods and the like elongate elements adapted for use downhole
in drilling and oil & gas prospecting and recovery (hereinafter "tubulars").
Background to the Invention
[0002] Currently (2008), it is widely recognised that production of oil & gas from readily
accessible fields is a matter of history and that prospects for discovery of virgin
reservoirs of such resources lie offshore in coastal waters and in generally challenging
sites. The issue of deep drilling brings commercial difficulties in terms of recovery
of the products, but more significantly complex technical difficulties in accessing
the products in the first place. Towards the end of the last century off shore drilling
into reservoirs at depths of 1300 feet was considered deep, but now it is not unusual
to be penetrating wells under some 10,000 feet of ocean. Drill ships and platforms
of various types have been successfully used for this work depending upon the site.
It also has to be considered that the total drill depth for converting a deep reservoir
into a well may be of the order of 25,000 feet taking account of deviated (steerable)
drilling techniques. When it is realised that the drill has to transit the depth of
water before landing upon the surface to be drilled, the enormity of the technical
issues is immediately apparent: for example the weight of the drill string alone is
a significant factor in operating a drilling rig both in terms of function and safety
issues. Similar considerations apply to the riser.
[0003] Commonly the drill pipe is formed from steel, and although there have been some proposals
to address the weight problem by adopting composite materials; such a switch in material
manifests different problems. It has been found that in order to match the strength
of steel tubulars, the wall thickness of the corresponding composite has to increase
markedly, but then there are losses in terms of properties recognised in steel such
as ductility (flexibility) and durability (wear resistance). A composite that is theoretically
capable of carrying the tensile load may be unusable on account of liability to fracture
in a heaving swell at sea or jarring in a hard formation, or due to inferior wear
characteristics for repeated run-in and pull out trips.
[0004] An additional problem with costs for drilling operations lies in the expensive wear
on the drill pipe as it is reciprocated (repeatedly run in and pulled out of the well)
in order to extend its length by addition of further sections of drill pipe to extend
drilling depth, or sometimes to replace it with a work string e.g. including a fishing
tool to retrieve junk such as broken drill pipe etc. Whereas it has been contemplated
that wear can be mitigated to an extent by use of a hard facing material, this is
contemplated around the upset region of metal drill pipe joints and is not considered
to be a universal solution.
[0005] Equally, wear on casing has to be considered as a problem that arises especially
during reciprocation of drill or other work strings.
[0006] Finally, it will be appreciated that during a drilling operation circulation fluids
(mud) are passed through and around the drill string. Such fluids facilitate drilling
by lubricating and clearing the bit of drill cuttings and formation detritus. Consequently,
the return fluid passing up the annulus to surface around the drill string is loaded
with abrasive drill cuttings which are detrimental to previously considered composite
materials.
[0007] Therefore, until now, the various problems associated with metal tubulars that are
subject to wear on external contact surfaces due to rotation and/or reciprocation
within a borehole have not been adequately addressed by known composite products.
[0008] A casing centraliser is described in
US 6 666 267 B1, which has at least one surface portion of a plastics material, or a ceramic material,
cermet or submicron grained cemented carbide. The centraliser has longitudinal ribs
or blades contacting the wellbore wall where required to provide an annular space
for cementation of the casing within the wellbore.
[0009] A method of making a composite spoolable (coil) tubing as per the preamble of claim
10 with a sensor is described in
US 200211927 A1 which includes an inner pressure barrier layer, a composite layer and an outer pressure
barrier. The composite layer may comprise carbon, aramid or glass fibres in a matrix
or resin.
[0010] An object of the present invention is to provide a composite product that is useful
in replacing metallic tubulars adapted for use downhole in the oil & gas industry.
Summary of the Invention
[0011] This object is achievable by the invention, as defined in the claims, and providing
a composite elongate tubular to be more particularly described by illustrative example
hereinafter.
[0012] The composite elongate tubular may comprise an external surface formed at least in
part by a rib, wherein said rib has a composite material surface in which a plurality
of ceramic elements are fixed, said elements offering low friction points of contact
in use, and being partially embedded in said composite material surface.
[0013] The mandrel may be of any suitable metallic material.
[0014] The ribs may be configured to extend generally in alignment with the longitudinal
axis of the elongate tubular, but preferably extend in a curved path that progresses
around the element as a winding, e.g. a helical winding or spiral configuration, such
that there is progressive angular displacement or offset throughout the length of
the ribs.
[0015] The composite elongate tubular may comprise a mandrel adapted to be connected within
a string of elongate tubulars, a composite material surface upon an outer surface
of the mandrel and comprising reinforcement material within a bonding material, said
composite material surface providing an external contact surface in which a plurality
of ceramic elements are fixed, said elements offering low friction points of contact
in use, and being partially embedded in the composite material, and a plurality flow
channels defined in the composite material surface between the external contact surface
in which a plurality of ceramic elements are fixed.
[0016] In all aspects of the invention, the composite material comprises a fibre-reinforced
polymer resin of a type known generally in the art as GRP or GFK of which many specific
examples are commercially available.
[0017] Preferably in each of the aforesaid aspects of the invention the ceramic elements
are discrete particulate entities with smooth contact surfaces, for example ceramic
beads.
[0018] The ceramic beads are durable and may be treated to enhance hardness and resistance
to wear for the intended use in the composite elongate tubular of this invention.
[0019] The ceramic elements may be randomly positioned or fixed in a regular pattern or
array.
[0020] Ceramic elements suitable for this purpose would be in particulate form, especially
as rounded beads (spherical or near spherical particles) of a size typically in the
range of 0.3 to 2mm diameter/longest dimension, or even larger. Suitable particles
include materials selected from zirconium oxide (ZrO
2), silicon nitride, cubic boron nitride, and mixtures of two or more thereof.
[0021] Optionally these particles or equivalent are surface treated with a silane coupling
agent (e.g. an epoxysilane) or similar primer to improve compatibility with the resin
matrix of a GRP(GFK) winding making up the composite material surface.
[0022] Application of such particles is achievable by use of a gravity feed hopper in conjunction
with a pneumatic device arranged to blow particles emerging from the hopper in a predetermined
direction. The air flow generated can be used to convey particles into a shaped distribution
nozzle for applying the particles to the GRP(GFK) resin matrix before it is fully
cured to form the composite material surface. In this way a uniform surface or a patterned
array of ceramic particles can be selectively generated upon the tubular by control
of the distribution nozzle.
[0023] Control of air pressure and air flow rate allows control of the process, and use
of a gate or valve on the hopper for throttling feed of the particles into the air
stream also provides a further degree of control.
[0024] Optionally, the applied particles are pressed into the GRP(GFK) resin matrix after
deposit by the air stream, to a predetermined extent for adequate retention whilst
leaving a part-spherical surface exposed.
[0025] Application of a roller device over the particles can achieve sufficient fixing into
the uncured GRP(GFK) resin matrix. The roller may have a hard rubber surface.
[0026] In the case of application treatment for smaller areas, the ceramic particles can
be firstly distributed upon and applied to an adhesive strip or non woven fleece which
is then wound or applied to the tubular to present the ceramic particle side onto
the tubular. A hard rubber roller may be used to apply light pressure to the back
side of the adhesive strip or fleece, transferring and embedding the particles in
the uncured GRP/CFK resin matrix. The adhesive strip or fleece can then be removed,
either prior to curing of the tubular, or after the curing process, leaving the transferred
ceramic particles to be fixed into the resin matrix as it cured.
[0027] Preferred embodiments of the improved composite tubulars of the invention take the
form of drill pipe stands, sub assemblies for attachment within the length of a drill
string.
[0028] The composite tubular may have end parts which have metal surfaces which are substantially
free of composite materials.
[0029] According to yet another aspect of the invention there is provided a method of making
a composite elongate tubular having an external surface in which a plurality of ceramic
elements are fixed, said elements offering low friction points of contact in use,
and being partially embedded in a composite material, wherein the method comprises
providing an elongate mandrel having a throughbore aligned with the longitudinal axis
of the mandrel, said mandrel having ends adapted to form a joint with another component
of a string of connectable elongate tubulars,
treating the mandrel under composite material-forming conditions with components comprising
reinforcement material and a bonding material in an amount sufficient to form a composite
material surface, wherein ceramic elements are also applied before the composite material
is fully formed, such that said ceramic elements present exposed surfaces in the formed
composite material surface.
[0030] The mandrel is wound with reinforcing fibres to which a bonding material is applied,
and the winding is such as to develop a continuous surface, or in the alternative
may develop a rib configuration around the mandrel with flow channels on either side
of the rib configuration. When a ribbed configuration is formed, any functional configuration
thereof may be adopted including without limitation a plurality of such ribs, with
or without an offset.
[0031] Preferably also the ceramic elements are added during the winding process so as to
provide exposed contact surfaces in the formed composite material surface, ideally
only in the outermost rib surface.
[0032] Alternatively a lay up procedure may be adopted to form the desired rib configuration
of composite materials, with ceramic elements being applied before the composite material
is cured.
[0033] The reinforcement material to be adopted in forming the composite of any aspect of
the invention would be any suitable reinforcing fibres which may include glass fibre,
boron fibres, KEVLAR
® fibres, carbon fibre or the like reinforcements suitable for use in a curable bonding
material such as a resin. The particular form of the reinforcing fibres may vary,
and may range from particles, whiskers, fibrils, extended length fibres, chopped fibres,
sheets, strips or mats thereof.
Description of the Drawing
[0034] An embodiment of the present invention will now be described, by way of example only,
with reference to the accompanying drawing, in which:
Figure 1 is a partially cutaway side view of a wear-resistant elongate composite tubular
adapted for coupling into a string of elongate tubulars; and
Figure 2 is a perspective view of an elongate composite tubular as shown in Figure
1.
Modes for Carrying out the Invention
[0035] Referring to Figure 1, an improved tubular is shown in the form of stand of drill
pipe
1, that has traditional end coupling means in the form of box and pin ends
2,
3 respectively for use in forming tool joints in connecting into a drill string, and
wear-resistant surface contact ribs
4, with flow-past channels 5 therebetween. The core of the drill pipe is a mandrel
6, which in this embodiment is a steel pipe, over which is applied a carbon fibre reinforcement
material and bonding material
7 and which is built up to form the ribs 4. Ceramic beads (not shown) are introduced
before the composite material is fully cured and generally form a random surface pattern
of exposed ceramic smooth surfaces.
[0036] In a method of making such an improved tubular, a steel mandrel having traditional
box and pin ends is mounted in a treatment booth, and reinforcement and bonding materials
suitable for forming a durable composite are applied under composite material forming
conditions.
[0037] Glass or carbon fibres, or mixed fibres are wound around the mandrel to envelope
substantially the whole length of the mandrel excepting the box and pin ends which
are protected from treatment. Thereafter, the reinforcement and bonding materials
are applied in a winding to build up three helical ribs that are mutually spaced (120
degrees) and angularly displaced along the longitudinal axis by 30 degrees. Towards
the end of the build up of the desired outer contact surface depth of the ribs ceramic
beads are introduced to the composite-forming material such that the beads provide
exposed curved contact surfaces upon the ribs. Spacing of the ribs provides channels
for flow past of circulation fluids and cuttings, and also permits agitation of the
return cuttings-laden circulation fluid.
[0038] Ceramic particles suitable for this purpose include rounded beads (spherical or near
spherical particles) of a size typically in the range of 0.3 to 2mm diameter/longest
dimension. Suitable materials include the commercially available micro milling beads
"ZIRCONOX
®" which comprise zirconium oxide (ZrO
2).
[0039] Optionally these particles or equivalent are surface treated with a silane coupling
agent (epoxysilane) or similar to improve compatibility with the resin matrix of a
GRP/GFK winding.
[0040] Application of such particles may be carried out in the following way.
[0041] Particles are stored in a conical feed hopper with hydraulic or manual gate valve
at bottom. A pressurized pneumatic system is provided in proximity to the gate valve
to direct an air stream past or below it. This allows particles to drop and become
directed by and/or entrained into the pressurized air stream, which allows them to
be blown onto the tubular in a controlled manner. In this embodiment controlled delivery
of the blown particles is enhanced through use of a flattened nozzle for distributing
the particles onto the tubular as the GRP(GFK) winding process is taking place, or
as the tubular is rotating immediately after the last winding layer. The particles
can be further embedded by application of pressure, e.g. using a hard rubber roller
applied with pressure to the surface of the tubular whilst it is rotating. The quantity
of particles applied can be regulated by altering either one of, or both air pressure
and flow, and by adjustment of the valve at the hopper aperture. The distribution
nozzle can be incorporated onto the winding shuttle arrangement.
[0042] In the case of application treatment for smaller areas, the ceramic particles are
lightly pressed onto an adhesive strip or non woven fleece which is then wound or
applied to the tubular. A hard rubber roller applies pressure to the back side of
the fleece, embedding the particles in the GRP/CFK matrix. The fleece can then be
removed, either prior to curing of the tubular, or after the curing process.
[0043] In use several of the aforesaid tubulars are coupled together optionally together
with stabilizer subs, or other tool subs to form a drill string connectable to a drill
BHA at one end and a rotational drive topside in the normal way.
[0044] The invention provides a tubular of improved torque and friction reducing qualities
that can be dimensioned to directly replace traditional stands of drill pipe, or incorporated
as a sub within a drill string.
[0045] The invention provides a weight/strength ratio improvement, fatigue improvement,
and increased torsional properties. Further there is provided the capacity to pre-determine
the flexibility or stiffness of the tubular.
[0046] A further advantage lies in the reduction of wear on the casing when composite tubulars
of the invention are used in place of traditional tubulars.
1. A composite elongate drill string tubular (1) for use downhole in drilling during
oil and gas prospecting and recovery operations comprising a metal mandrel (6) having
ends (2, 3) adapted to form a joint with another component of a string of connectable
elongate tubulars, wherein an external surface of the tubular comprises a filament
wound reinforced composite material (7) having a plurality of exposed ceramic surfaces.
2. A composite elongate tubular as claimed in claim 1, comprising an external surface
formed at least in part by a rib (4), wherein said rib has a composite material surface
in which a plurality of ceramic elements are fixed, said elements offering low friction
points of contact in use, and being partially embedded in said composite material
surface.
3. A composite elongate tubular as claimed in claim 2, wherein said rib (4) is configured
to extend generally in alignment with the longitudinal axis of the elongate tubular.
4. A composite elongate tubular as claimed in claim 2, wherein said rib (4) extends in
a curved path that progresses around the element as a winding.
5. A composite elongate drill string tubular as claimed in claim 1, wherein the mandrel
(6) is adapted to be connected within a string of elongate tubulars using box and
pin joints (2, 3), wherein the filament wound composite material surface (7) is provided
upon an outer surface of the mandrel, the composite material comprising a reinforcement
material within a bonding material, said composite material surface providing an external
contact surface in which a plurality of ceramic elements are fixed, said elements
offering low friction points of contact in use, and being partially embedded in the
composite material, and a plurality of flow channels (5) defined in the composite
material surface between the external contact surface in which a plurality of ceramic
elements are fixed.
6. A composite elongate tubular as claimed in any one of claims 2 to 5, wherein the ceramic
elements are discrete particulate entities with smooth contact surfaces, for example
ceramic beads.
7. A composite elongate tubular as claimed in any one of claims 2 to 6, wherein the ceramic
elements have been treated to enhance hardness and resistance to wear.
8. A composite elongate tubular as claimed in any one of claims 2 to 7, wherein the ceramic
elements are randomly positioned.
9. A composite elongate tubular as claimed in any one of claims 2 to 7, wherein the ceramic
elements are fixed in a regular pattern or array.
10. A method of making a composite elongate tubular (1) having an external surface in
which a plurality of ceramic elements are fixed, said elements offering low friction
points of contact in use, and being partially embedded in a composite material (7),
wherein the method comprises providing an elongate mandrel (6) having a throughbore
aligned with the longitudinal axis of the mandrel, said mandrel having ends (2, 3)
adapted to form a joint with another component of a string of connectable elongate
tubulars, treating the mandrel under composite material-forming conditions with components
comprising reinforcement material and a bonding material in an amount sufficient to
form a composite material surface, wherein the mandrel is filament wound with reinforcing
fibres to which a bonding material is applied, characterised by ceramic elements also applied before the composite material is fully formed, such
that said ceramic elements present exposed surfaces in the formed composite material
surface.
11. A method of making a composite elongate tubular as claimed in claim 10, wherein the
winding is such as to develop a continuous surface,
12. A method of making a composite elongate tubular as claimed in claim 10, wherein the
winding is such as to develop a rib configuration (4) around the mandrel with flow
channels (5) on either side of the rib configuration.
13. A method of making a composite elongate tubular as claimed in any one of claims 10
to 12, wherein the ceramic elements are added during the winding process so as to
provide exposed contact surfaces in the formed composite material surface.
14. A method of making a composite elongate tubular as claimed in any one of claims 10
to 13, wherein the mandrel (6) is metallic.
15. A method of making a composite elongate tubular as claimed in any one of claims 10
to 14, wherein the ceramic elements are pre-treated with a silane coupling agent.
16. A method of making a composite elongate tubular as claimed in any one of claims 10
to 15, wherein the ceramic elements are beads of zirconium oxide (ZrO2), silicon nitride, cubic boron nitride, and mixtures of two or more thereof.
17. A method of making a composite elongate tubular as claimed in any one of claims 10
to 16, wherein the ceramic elements are applied using a gravity feed hopper in conjunction
with a pneumatic device arranged to blow elements emerging from the hopper onto the
composite material surface upon the mandrel before the composite material is cured.
18. A method of making a composite elongate tubular as claimed in any one of claims 10
to 17, wherein the ceramic elements are pressed into the composite material surface
using a roller device.
1. Ein längliches Verbundbohrstrangrohr (1) zur Verwendung unter Tage beim Bohren während
Operationen der Öl- und Gassuche und -gewinnung, das eine Metallspindel (6) beinhaltet,
die Enden (2, 3) aufweist, welche angepasst sind, um mit einer anderen Komponente
eines Strangs von koppelbaren länglichen Rohren eine Verbindung zu bilden, wobei eine
äußere Oberfläche des Rohres ein fadengewickeltes verstärktes Verbundmaterial (7)
mit einer Vielzahl von freiliegenden keramischen Oberflächen beinhaltet.
2. Längliches Verbundrohr gemäß Anspruch 1, das eine äußere Oberfläche beinhaltet, die
mindestens zum Teil durch eine Rippe (4) gebildet ist, wobei die Rippe eine Verbundmaterialoberfläche
aufweist, in der eine Vielzahl von keramischen Elementen fixiert ist, wobei die Elemente
im Gebrauch Kontaktpunkte geringer Reibung bieten und teilweise in der Verbundmaterialoberfläche
eingebettet sind.
3. Längliches Verbundrohr gemäß Anspruch 2, wobei die Rippe (4) konfiguriert ist, um
sich im Allgemeinen in Ausrichtung nach der Längsachse des länglichen Rohrs zu erstrecken.
4. Längliches Verbundrohr gemäß Anspruch 2, wobei sich die Rippe (4) in einem gekrümmten
Pfad erstreckt, der als Wicklung um das Element verläuft.
5. Längliches Verbundbohrstrangrohr gemäß Anspruch 1, wobei die Spindel (6) angepasst
ist, um innerhalb eines Strangs länglicher Rohre unter Verwendung von Muffe-und-Zapfen-Verbindungen
(2, 3) gekoppelt zu werden, wobei die fadengewickelte Verbundmaterialoberfläche (7)
auf einer Außenoberfläche der Spindel bereitgestellt ist, wobei das Verbundmaterial
ein Verstärkungsmaterial innerhalb eines Bindemittel beinhaltet, wobei die Verbundmaterialoberfläche
Folgendes bereitstellt: eine äußere Kontaktoberfläche, in der eine Vielzahl von keramischen
Elementen fixiert ist, wobei die Elemente im Gebrauch Kontaktpunkte geringer Reibung
bieten und teilweise in dem Verbundmaterial eingebettet sind, und eine Vielzahl von
Fließkanälen (5), die in der Verbundmaterialoberfläche zwischen der äußeren Kontaktoberfläche,
in der eine Vielzahl von keramischen Elementen fixiert ist, definiert sind.
6. Längliches Verbundrohr gemäß einem der Ansprüche 2 bis 5, wobei die keramischen Elemente
getrennte partikelförmige Einheiten mit glatten Kontaktoberflächen sind, zum Beispiel
keramische Kügelchen.
7. Längliches Verbundrohr gemäß einem der Ansprüche 2 bis 6, wobei die keramischen Elemente
behandelt worden sind, um die Härte und Abnutzungsbeständigkeit zu verbessern.
8. Längliches Verbundrohr gemäß einem der Ansprüche 2 bis 7, wobei die keramischen Elemente
zufällig positioniert sind.
9. Längliches Verbundrohr gemäß einem der Ansprüche 2 bis 7, wobei die keramischen Elemente
in einem regelmäßigen Muster oder einer regelmäßigen Gruppierung fixiert sind.
10. Ein Verfahren zum Herstellen eines länglichen Verbundrohrs (1) mit einer äußeren Oberfläche,
in der eine Vielzahl von keramischen Elementen fixiert ist, wobei die Elemente im
Gebrauch Kontaktpunkte geringer Reibung bieten und teilweise in einem Verbundmaterial
(7) eingebettet sind, wobei das Verfahren Folgendes beinhaltet: Bereitstellen einer
länglichen Spindel (6) mit einer Durchgangsbohrung, die nach der Längsachse der Spindel
ausgerichtet ist, wobei die Spindel Enden (2, 3) aufweist, welche angepasst sind,
um mit einer anderen Komponente eines Strangs von koppelbaren länglichen Rohren eine
Verbindung zu bilden, Behandeln der Spindel unter Verbundmaterial bildenden Bedingungen
mit Komponenten, die Verstärkungsmaterial und ein Bindemittel in einer ausreichenden
Menge, um eine Verbundmaterialoberfläche zu bilden, beinhalten, wobei die Spindel
mit Verstärkungsfasern fadengewickelt ist, auf die ein Bindemittel aufgebracht ist,
dadurch gekennzeichnet, dass ebenfalls keramische Elemente aufgebracht werden, bevor das Verbundmaterial vollkommen
gebildet ist, so dass die keramischen Elemente freiliegende Oberflächen in der gebildeten
Verbundmaterialoberfläche präsentieren.
11. Verfahren zum Herstellen eines länglichen Verbundrohrs gemäß Anspruch 10, wobei die
Wicklung derart ist, dass sie eine kontinuierliche Oberfläche entwickelt.
12. Verfahren zum Herstellen eines länglichen Verbundrohrs gemäß Anspruch 10, wobei die
Wicklung derart ist, dass sie eine Rippenkonfiguration (4) um die Spindel mit Fließkanälen
(5) auf beiden Seiten der Rippenkonfiguration entwickelt.
13. Verfahren zum Herstellen eines länglichen Verbundrohrs gemäß einem der Ansprüche 10
bis 12, wobei die keramischen Elemente während des Wicklungsvorgangs hinzugefügt werden,
um in der gebildeten Verbundmaterialoberfläche freiliegende Kontaktoberflächen bereitzustellen.
14. Verfahren zum Herstellen eines länglichen Verbundrohrs gemäß einem der Ansprüche 10
bis 13, wobei die Spindel (6) metallisch ist.
15. Verfahren zum Herstellen eines länglichen Verbundrohrs gemäß einem der Ansprüche 10
bis 14, wobei die keramischen Elemente mit einem Silanhaftvermittler vorbehandelt
werden.
16. Verfahren zum Herstellen eines länglichen Verbundrohrs gemäß einem der Ansprüche 10
bis 15, wobei die keramischen Elemente Kügelchen aus Zirconiumoxid (ZrO2), Siliciumnitrid, kubischem Bornitrid und Mischungen von zwei oder mehr davon sind.
17. Verfahren zum Herstellen eines länglichen Verbundrohrs gemäß einem der Ansprüche 10
bis 16, wobei die keramischen Elemente unter Verwendung eines Schwerkraftzuführtrichters
in Verbindung mit einer pneumatischen Vorrichtung aufgebracht werden, die eingerichtet
ist, um aus dem Trichter austretende Elemente auf die Verbundmaterialoberfläche auf
der Spindel zu blasen, bevor das Verbundmaterial gehärtet wird.
18. Verfahren zum Herstellen eines länglichen Verbundrohrs gemäß einem der Ansprüche 10
bis 17, wobei die keramischen Elemente unter Verwendung einer Rollenvorrichtung in
die Verbundmaterialoberfläche gepresst werden.
1. Un tubulaire de train de forage allongé composite (1) destiné à être utilisé en fond
de trou lors du forage au cours de la prospection de pétrole et de gaz et des opérations
de récupération comprenant un mandrin en métal (6) ayant des extrémités (2, 3) conçues
pour former un joint avec un autre composant d'un train de tubulaires allongés raccordables,
une surface externe du tubulaire comprenant un matériau composite renforcé à enroulement
filamentaire (7) ayant une pluralité de surfaces céramiques apparentes.
2. Un tubulaire allongé composite tel que revendiqué dans la revendication 1, comprenant
une surface externe formée au moins en partie par une nervure (4), ladite nervure
ayant une surface de matériau composite dans laquelle une pluralité d'éléments céramiques
sont fixés, lesdits éléments offrant des points de contact à faible frottement en
utilisation, et étant partiellement encastrés dans ladite surface de matériau composite.
3. Un tubulaire allongé composite tel que revendiqué dans la revendication 2, dans lequel
ladite nervure (4) est configurée pour se prolonger de façon à être généralement en
alignement avec l'axe longitudinal du tubulaire allongé.
4. Un tubulaire allongé composite tel que revendiqué dans la revendication 2, dans lequel
ladite nervure (4) se prolonge selon une trajectoire incurvée qui progresse autour
de l'élément en tant qu'enroulement.
5. Un tubulaire de train de forage allongé composite tel que revendiqué dans la revendication
1, dans lequel le mandrin (6) est conçu pour être raccordé au sein d'un train de tubulaires
allongés à l'aide de joints à filetage femelle et mâle (2, 3), dans lequel la surface
de matériau composite à enroulement filamentaire (7) est fournie par-dessus une surface
extérieure du mandrin, le matériau composite comprenant un matériau de renforcement
au sein d'un matériau liant, ladite surface de matériau composite fournissant une
surface de contact externe dans laquelle une pluralité d'éléments céramiques sont
fixés, lesdits éléments offrant des points de contact à faible frottement en utilisation,
et étant partiellement encastrés dans le matériau composite, et une pluralité de canaux
d'écoulement (5) définis dans la surface de matériau composite entre la surface de
contact externe dans laquelle une pluralité d'éléments céramiques sont fixés.
6. Un tubulaire allongé composite tel que revendiqué dans n'importe laquelle des revendications
2 à 5, dans lequel les éléments céramiques sont des entités particulaires discrètes
dotées de surfaces de contact lisses, par exemple des perles céramiques.
7. Un tubulaire allongé composite tel que revendiqué dans n'importe laquelle des revendications
2 à 6, dans lequel les éléments céramiques ont été traités afin d'améliorer la dureté
et la résistance à l'usure.
8. Un tubulaire allongé composite tel que revendiqué dans n'importe laquelle des revendications
2 à 7, dans lequel les éléments céramiques sont positionnés de façon aléatoire.
9. Un tubulaire allongé composite tel que revendiqué dans n'importe laquelle des revendications
2 à 7, dans lequel les éléments céramiques sont fixés selon une grille ou un motif
régulier.
10. Une méthode pour réaliser un tubulaire allongé composite (1) ayant une surface externe
dans laquelle une pluralité d'éléments céramiques sont fixés, lesdits éléments offrant
des points de contact à faible frottement en utilisation, et étant partiellement encastrés
dans un matériau composite (7), la méthode comprenant le fait de fournir un mandrin
allongé (6) ayant un alésage débouchant aligné sur l'axe longitudinal du mandrin,
ledit mandrin ayant des extrémités (2, 3) conçues pour former un joint avec un autre
composant d'un train de tubulaires allongés raccordables, de traiter le mandrin dans
des conditions de formation de matériau composite avec des composants comprenant le
matériau de renforcement et un matériau liant dans une quantité suffisante pour former
une surface de matériau composite, dans laquelle le mandrin est à enroulement filamentaire
avec des fibres de renfort sur lesquelles un matériau liant est appliqué, caractérisée par des éléments céramiques également appliqués avant que le matériau composite ne soit
entièrement formé, de telle sorte que lesdits éléments céramiques présentent des surfaces
apparentes dans la surface de matériau composite formée.
11. Une méthode pour réaliser un tubulaire allongé composite telle que revendiquée dans
la revendication 10, dans laquelle l'enroulement est tel qu'une surface continue se
développe.
12. Une méthode pour réaliser un tubulaire allongé composite telle que revendiquée dans
la revendication 10, dans laquelle l'enroulement est tel qu'une configuration en nervure
(4) se développe autour du mandrin avec des canaux d'écoulement (5) de chaque côté
de la configuration en nervure.
13. Une méthode pour réaliser un tubulaire allongé composite telle que revendiquée dans
n'importe laquelle des revendications 10 à 12, dans laquelle les éléments céramiques
sont ajoutés au cours du processus d'enroulement afin de fournir des surfaces de contact
apparentes dans la surface de matériau composite formée.
14. Une méthode pour réaliser un tubulaire allongé composite telle que revendiquée dans
n'importe laquelle des revendications 10 à 13, dans laquelle le mandrin (6) est métallique.
15. Une méthode pour réaliser un tubulaire allongé composite telle que revendiquée dans
n'importe laquelle des revendications 10 à 14, dans laquelle les éléments céramiques
sont prétraités avec un agent de couplage à base de silane.
16. Une méthode pour réaliser un tubulaire allongé composite telle que revendiquée dans
n'importe laquelle des revendications 10 à 15, dans laquelle les éléments céramiques
sont des perles d'oxyde de zirconium (ZrO2), de nitrure de silicium, de nitrure de bore cubique, et des mélanges de deux de
ceux-ci ou plus.
17. Une méthode pour réaliser un tubulaire allongé composite telle que revendiquée dans
n'importe laquelle des revendications 10 à 16, dans laquelle les éléments céramiques
sont appliqués à l'aide d'une trémie à alimentation par gravité en conjonction avec
un dispositif pneumatique agencé afin de souffler des éléments émergeant de la trémie
sur la surface de matériau composite par-dessus le mandrin avant que le matériau composite
ne soit durci.
18. Une méthode pour réaliser un tubulaire allongé composite telle que revendiquée dans
n'importe laquelle des revendications 10 à 17, dans laquelle les éléments céramiques
sont enfoncés dans la surface de matériau composite à l'aide d'un dispositif à rouleau.

REFERENCES CITED IN THE DESCRIPTION
This list of references cited by the applicant is for the reader's convenience only.
It does not form part of the European patent document. Even though great care has
been taken in compiling the references, errors or omissions cannot be excluded and
the EPO disclaims all liability in this regard.
Patent documents cited in the description